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Atomic superheterodyne receiver based on microwave-dressed Rydberg spectroscopy

机译:基于微波衣物Rydberg光谱的原子超差异Ovityne接收器

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摘要

Highly sensitive phase- and frequency-resolved detection of microwave electric fields is of central importance in a wide range of fields, including cosmology(1,2), meteorology(3), communication(4) and microwave quantum technology(5). Atom-based electrometers(6,7) promise traceable standards for microwave electrometry, but their best sensitivity is currently limited to a few mu V cm(-1) Hz(-1/2) (refs. (8,9)) and they only yield information about the field amplitude and polarization(10). Here, we demonstrate a conceptually new microwave electric field sensor-the Rydberg-atom superheterodyne receiver (superhet). The sensitivity of this technique scales favourably, achieving even 55 nV cm(-1) Hz(-1/2) with a modest set-up. The minimum detectable field of 780 pV cm(-1) is three orders of magnitude smaller than what can be reached by existing atomic electrometers. The Rydberg-atom superhet allows SI-traceable measurements, reaching uncertainty levels of 10(-8) V cm(-1) when measuring a sub-mu V cm(-1) field, which has been inaccessible so far with atomic sensors. Our method also enables phase and frequency detection. In sensing Doppler frequencies, sub-mu Hz precision is reached for fields of a few hundred nV cm(-1). This work is a first step towards realizing electromagnetic-wave quantum sensors with quantum projection noise-limited sensitivity. Such a device will impact diverse areas like radio astronomy, radar technology and metrology.
机译:微波电场的高度敏感相位和频率分辨检测在各种领域中具有核心重要性,包括宇宙学(1,2),气象(3),通信(4)和微波量子技术(5)。基于原子的电动达(6,7)可以承诺可追踪的微波电气测定标准,但它们的最佳敏感性目前限于几Mu Vcm(-1)Hz(-1/2)(参考文献(8,9))和它们仅产生有关场幅度和极化(10)的信息。在这里,我们展示了一个概念上新的微波电场传感器 - Rydberg-Atom超外oderyodyne接收器(超级)。该技术的灵敏度有利地缩放,实现了具有适度设置的55个NV cm(-1/2)的甚至55 nV cm(-1/2)。 780pVcm(-1)的最小可检测场是比现有原子电电动机可以达到的三个数量级。 Rydberg-Atom超时允许SI可追踪的测量值,在测量亚MU VCM(-1)场时,达到10(-8)V cm(-1)的不确定度水平,其到目前为止与原子传感器无法访问。我们的方法还可以启用相位和频率检测。在感测多普勒频率中,达到几百nV cm(-1)的字段达到亚mu hz精度。这项工作是实现具有量子投影噪声限制灵敏度的电磁波量子传感器的第一步。这种设备将影响射线天文,雷达技术和计量等不同的区域。

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  • 来源
    《Nature physics》 |2020年第9期|共11页
  • 作者单位

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

    Shanxi Univ Inst Laser Spect State Key Lab Quantum Opt &

    Quantum Opt Devices Taiyuan Shanxi Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学;
  • 关键词

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